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首页> 外文期刊>Journal of natural gas science and engineering >A fractal production prediction model for shale gas reservoirs
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A fractal production prediction model for shale gas reservoirs

机译:页岩气藏的分形生产预测模型

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A production forecasting model for shale gas reservoirs is proposed based on the continuum medium theory (organic/inorganic matrix) and discrete fracture model (fracture system). The fractal property of the pore size distribution of shale matrix is considered. The stability and accuracy of the model are successfully validated with the field data. Variations of different flow mechanisms during the exploitation of shale gas are investigated. The sensitivities of gas production to the pore size distribution of shale matrix, natural fracture parameters and hydraulic fracture parameters are analyzed. Our results show that (1) The contribution of the convective flow and surface diffusion to total gas flow increases with the depletion of shale gas, while that of the bulk diffusion and Knudsen diffusion decreases gradually. (2) Among the fractal pore-size parameters, the maximum inorganic pore diameter has the most significant impact on the cumulative gas production of up to 13.9%. (3) After the natural fracture number increases to a certain extent, gas production increases slowly even if more natural fractures exist in the reservoir. The complex fracture network is beneficial to increase shale gas production. (4) The cumulative gas production rises as the increase of the hydraulic fracture half-length, flow conductivity, spacing and number. The rapid production rate in the early production stage may result in a fast reservoir energy depletion, which has a negative effect on production.
机译:基于连续核介质理论(有机/无机基质)和离散断裂模型(骨折系统)提出了一种生产预测模型。考虑了页岩基质孔径分布的分形特征。模型的稳定性和准确性与现场数据成功验证。研究了页岩气剥削过程中不同流动机制的变化。分析了天然气生产对页岩基质,自然裂缝参数和液压断裂参数的孔径分布的敏感性。我们的结果表明,(1)对流流动和表面扩散对总气流的贡献随着页岩气的耗竭而增加,而散装扩散和knudsen扩散的逐渐降低。 (2)在分形孔径参数中,最大的无机孔径对累积气体产生的最大影响高达13.9%。 (3)在自然裂缝数在一定程度上增加后,即使储层中存在更多的自然骨折,气体产量也会缓慢增加。复杂的骨折网络有利于增加页岩气产量。 (4)累积气体产量随着液压骨折半长,流动导电性,间隔和数量的增加而上升。早期生产阶段的快速生产率可能导致快速的储层能量消耗,这对生产具有负面影响。

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